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Association of Sulfur, Transition Metals, and the Oxidative Potential of Outdoor PM2.5 with Acute Cardiovascular Events: A Case-Crossover Study of Canadian Adults 期刊论文
Environmental Health Perspectives, 2021
作者:  Scott Weichenthal;  Eric Lavigne;  Alison Traub;  Dana Umbrio;  Hongyu You;  Krystal Pollitt;  Tim Shin;  Ryan Kulka;  Dave M. Stieb;  Jill Korsiak;  Barry Jessiman;  Jeff R. Brook;  Marianne Hatzopoulou;  Greg Evans;  Richard T. Burnett
收藏  |  浏览/下载:12/0  |  提交时间:2021/10/22
Anthropogenic Impacts on Tropospheric Reactive Chlorine since the Preindustrial 期刊论文
Geophysical Research Letters, 2021
作者:  Shuting Zhai;  Xuan Wang;  Joseph R. McConnell;  Lei Geng;  Jihong Cole-Dai;  Michael Sigl;  Nathan Chellman;  Tomá;  s Sherwen;  Ryan Pound;  Koji Fujita;  Shohei Hattori;  Jonathan M. Moch;  Lei Zhu;  Mat Evans;  Michel Legrand;  Pengfei Liu;  Daniel Pasteris;  Yuk-Chun Chan;  Lee T. Murray;  Becky Alexander
收藏  |  浏览/下载:10/0  |  提交时间:2021/07/27
Approaching the motional ground state of a 10-kg object 期刊论文
Science, 2021
作者:  Chris Whittle;  Evan D. Hall;  Sheila Dwyer;  Nergis Mavalvala;  Vivishek Sudhir;  R. Abbott;  A. Ananyeva;  C. Austin;  L. Barsotti;  J. Betzwieser;  C. D. Blair;  A. F. Brooks;  D. D. Brown;  A. Buikema;  C. Cahillane;  J. C. Driggers;  A. Effler;  A. Fernandez-Galiana;  P. Fritschel;  V. V. Frolov;  T. Hardwick;  M. Kasprzack;  K. Kawabe;  N. Kijbunchoo;  J. S. Kissel;  G. L. Mansell;  F. Matichard;  L. McCuller;  T. McRae;  A. Mullavey;  A. Pele;  R. M. S. Schofield;  D. Sigg;  M. Tse;  G. Vajente;  D. C. Vander-Hyde;  Hang Yu;  Haocun Yu;  C. Adams;  R. X. Adhikari;  S. Appert;  K. Arai;  J. S. Areeda;  Y. Asali;  S. M. Aston;  A. M. Baer;  M. Ball;  S. W. Ballmer;  S. Banagiri;  D. Barker;  J. Bartlett;  B. K. Berger;  D. Bhattacharjee;  G. Billingsley;  S. Biscans;  R. M. Blair;  N. Bode;  P. Booker;  R. Bork;  A. Bramley;  K. C. Cannon;  X. Chen;  A. A. Ciobanu;  F. Clara;  C. M. Compton;  S. J. Cooper;  K. R. Corley;  S. T. Countryman;  P. B. Covas;  D. C. Coyne;  L. E. H. Datrier;  D. Davis;  C. Di Fronzo;  K. L. Dooley;  P. Dupej;  T. Etzel;  M. Evans;  T. M. Evans;  J. Feicht;  P. Fulda;  M. Fyffe;  J. A. Giaime;  K. D. Giardina;  P. Godwin;  E. Goetz;  S. Gras;  C. Gray;  R. Gray;  A. C. Green;  E. K. Gustafson;  R. Gustafson;  J. Hanks;  J. Hanson;  R. K. Hasskew;  M. C. Heintze;  A. F. Helmling-Cornell;  N. A. Holland;  J. D. Jones;  S. Kandhasamy;  S. Karki;  P. J. King;  Rahul Kumar;  M. Landry;  B. B. Lane;  B. Lantz;  M. Laxen;  Y. K. Lecoeuche;  J. Leviton;  J. Liu;  M. Lormand;  A. P. Lundgren;  R. Macas;  M. MacInnis;  D. M. Macleod;  S. Márka;  Z. Márka;  D. V. Martynov;  K. Mason;  T. J. Massinger;  R. McCarthy;  D. E. McClelland;  S. McCormick;  J. McIver;  G. Mendell;  K. Merfeld;  E. L. Merilh;  F. Meylahn;  T. Mistry;  R. Mittleman;  G. Moreno;  C. M. Mow-Lowry;  S. Mozzon;  T. J. N. Nelson;  P. Nguyen;  L. K. Nuttall;  J. Oberling;  Richard J. Oram;  C. Osthelder;  D. J. Ottaway;  H. Overmier;  J. R. Palamos;  W. Parker;  E. Payne;  R. Penhorwood;  C. J. Perez;  M. Pirello;  H. Radkins;  K. E. Ramirez;  J. W. Richardson;  K. Riles;  N. A. Robertson;  J. G. Rollins;  C. L. Romel;  J. H. Romie;  M. P. Ross;  K. Ryan;  T. Sadecki;  E. J. Sanchez;  L. E. Sanchez;  T. R. Saravanan;  R. L. Savage;  D. Schaetz;  R. Schnabel;  E. Schwartz;  D. Sellers;  T. Shaffer;  B. J. J. Slagmolen;  J. R. Smith;  S. Soni;  B. Sorazu;  A. P. Spencer;  K. A. Strain;  L. Sun;  M. J. Szczepańczyk;  M. Thomas;  P. Thomas;  K. A. Thorne;  K. Toland;  C. I. Torrie;  G. Traylor;  A. L. Urban;  G. Valdes;  P. J. Veitch;  K. Venkateswara;  G. Venugopalan;  A. D. Viets;  T. Vo;  C. Vorvick;  M. Wade;  R. L. Ward;  J. Warner;  B. Weaver;  R. Weiss;  B. Willke;  C. C. Wipf;  L. Xiao;  H. Yamamoto;  L. Zhang;  M. E. Zucker;  J. Zweizig
收藏  |  浏览/下载:16/0  |  提交时间:2021/06/24
Revealing x-ray and gamma ray temporal and spectral similarities in the GRB 190829A afterglow 期刊论文
Science, 2021
作者:  H.E.S.S. Collaboration;  H. Abdalla;  F. Aharonian;  F. Ait Benkhali;  E. O. Angüner;  C. Arcaro;  C. Armand;  T. Armstrong;  H. Ashkar;  M. Backes;  V. Baghmanyan;  V. Barbosa Martins;  A. Barnacka;  M. Barnard;  Y. Becherini;  D. Berge;  K. Bernlöhr;  B. Bi;  E. Bissaldi;  M. Böttcher;  C. Boisson;  J. Bolmont;  M. de Bony de Lavergne;  M. Breuhaus;  F. Brun;  P. Brun;  M. Bryan;  M. Büchele;  T. Bulik;  T. Bylund;  S. Caroff;  A. Carosi;  S. Casanova;  T. Chand;  S. Chandra;  A. Chen;  G. Cotter;  M. Curyło;  J. Damascene Mbarubucyeye;  I. D. Davids;  J. Davies;  C. Deil;  J. Devin;  L. Dirson;  A. Djannati-Ataï;  A. Dmytriiev;  A. Donath;  V. Doroshenko;  L. Dreyer;  C. Duffy;  J. Dyks;  K. Egberts;  F. Eichhorn;  S. Einecke;  G. Emery;  J.-P. Ernenwein;  K. Feijen;  S. Fegan;  A. Fiasson;  G. Fichet de Clairfontaine;  G. Fontaine;  S. Funk;  M. Füßling;  S. Gabici;  Y. A. Gallant;  G. Giavitto;  L. Giunti;  D. Glawion;  J. F. Glicenstein;  M.-H. Grondin;  J. Hahn;  M. Haupt;  G. Hermann;  J. A. Hinton;  W. Hofmann;  C. Hoischen;  T. L. Holch;  M. Holler;  M. Hörbe;  D. Horns;  D. Huber;  M. Jamrozy;  D. Jankowsky;  F. Jankowsky;  A. Jardin-Blicq;  V. Joshi;  I. Jung-Richardt;  E. Kasai;  M. A. Kastendieck;  K. Katarzyński;  U. Katz;  D. Khangulyan;  B. Khélifi;  S. Klepser;  W. Kluźniak;  Nu. Komin;  R. Konno;  K. Kosack;  D. Kostunin;  M. Kreter;  G. Lamanna;  A. Lemière;  M. Lemoine-Goumard;  J.-P. Lenain;  F. Leuschner;  C. Levy;  T. Lohse;  I. Lypova;  J. Mackey;  J. Majumdar;  D. Malyshev;  D. Malyshev;  V. Marandon;  P. Marchegiani;  A. Marcowith;  A. Mares;  G. Martí-Devesa;  R. Marx;  G. Maurin;  P. J. Meintjes;  M. Meyer;  A. Mitchell;  R. Moderski;  L. Mohrmann;  A. Montanari;  C. Moore;  P. Morris;  E. Moulin;  J. Muller;  T. Murach;  K. Nakashima;  A. Nayerhoda;  M. de Naurois;  H. Ndiyavala;  J. Niemiec;  L. Oakes;  P. O’Brien;  H. Odaka;  S. Ohm;  L. Olivera-Nieto;  E. de Ona Wilhelmi;  M. Ostrowski;  S. Panny;  M. Panter;  R. D. Parsons;  G. Peron;  B. Peyaud;  Q. Piel;  S. Pita;  V. Poireau;  A. Priyana Noel;  D. A. Prokhorov;  H. Prokoph;  G. Pühlhofer;  M. Punch;  A. Quirrenbach;  S. Raab;  R. Rauth;  P. Reichherzer;  A. Reimer;  O. Reimer;  Q. Remy;  M. Renaud;  F. Rieger;  L. Rinchiuso;  C. Romoli;  G. Rowell;  B. Rudak;  E. Ruiz-Velasco;  V. Sahakian;  S. Sailer;  H. Salzmann;  D. A. Sanchez;  A. Santangelo;  M. Sasaki;  M. Scalici;  J. Schäfer;  F. Schüssler;  H. M. Schutte;  U. Schwanke;  M. Seglar-Arroyo;  M. Senniappan;  A. S. Seyffert;  N. Shafi;  J. N. S. Shapopi;  K. Shiningayamwe;  R. Simoni;  A. Sinha;  H. Sol;  A. Specovius;  S. Spencer;  M. Spir-Jacob;  Ł. Stawarz;  L. Sun;  R. Steenkamp;  C. Stegmann;  S. Steinmassl;  C. Steppa;  T. Takahashi;  T. Tam;  T. Tavernier;  A. M. Taylor;  R. Terrier;  J. H. E. Thiersen;  D. Tiziani;  M. Tluczykont;  L. Tomankova;  M. Tsirou;  R. Tuffs;  Y. Uchiyama;  D. J. van der Walt;  C. van Eldik;  C. van Rensburg;  B. van Soelen;  G. Vasileiadis;  J. Veh;  C. Venter;  P. Vincent;  J. Vink;  H. J. Völk;  Z. Wadiasingh;  S. J. Wagner;  J. Watson;  F. Werner;  R. White;  A. Wierzcholska;  Yu Wun Wong;  A. Yusafzai;  M. Zacharias;  R. Zanin;  D. Zargaryan;  A. A. Zdziarski;  A. Zech;  S. J. Zhu;  J. Zorn;  S. Zouari;  N. Żywucka;  P. Evans;  K. Page
收藏  |  浏览/下载:29/0  |  提交时间:2021/06/15
Core commitments for field trials of gene drive organisms 期刊论文
Science, 2020
作者:  Kanya C. Long;  Luke Alphey;  George J. Annas;  Cinnamon S. Bloss;  Karl J. Campbell;  Jackson Champer;  Chun-Hong Chen;  Amit Choudhary;  George M. Church;  James P. Collins;  Kimberly L. Cooper;  Jason A. Delborne;  Owain R. Edwards;  Claudia I. Emerson;  Kevin Esvelt;  Sam Weiss Evans;  Robert M. Friedman;  Valentino M. Gantz;  Fred Gould;  Sarah Hartley;  Elizabeth Heitman;  Janet Hemingway;  Hirotaka Kanuka;  Jennifer Kuzma;  James V. Lavery;  Yoosook Lee;  Marce Lorenzen;  Jeantine E. Lunshof;  John M. Marshall;  Philipp W. Messer;  Craig Montell;  Kenneth A. Oye;  Megan J. Palmer;  Philippos Aris Papathanos;  Prasad N. Paradkar;  Antoinette J. Piaggio;  Jason L. Rasgon;  Gordana Rašić;  Larisa Rudenko;  J. Royden Saah;  Maxwell J. Scott;  Jolene T. Sutton;  Adam E. Vorsino;  Omar S. Akbari
收藏  |  浏览/下载:22/0  |  提交时间:2020/12/22
Publisher Correction: Current and future global climate impacts resulting from COVID-19 期刊论文
Nature, 2020
作者:  Piers M. Forster;  Harriet I. Forster;  Mat J. Evans;  Matthew J. Gidden;  Chris D. Jones;  Christoph A. Keller;  Robin D. Lamboll;  Corinne Le Qué;  ;  Joeri Rogelj;  Deborah Rosen;  Carl-Friedrich Schleussner;  Thomas B. Richardson;  Christopher J. Smith;  Steven T. Turnock
收藏  |  浏览/下载:12/0  |  提交时间:2020/08/18
Current and future global climate impacts resulting from COVID-19 期刊论文
Nature, 2020
作者:  Piers M. Forster;  Harriet I. Forster;  Mat J. Evans;  Matthew J. Gidden;  Chris D. Jones;  Christoph A. Keller;  Robin D. Lamboll;  Corinne Le Qué;  ;  Joeri Rogelj;  Deborah Rosen;  Carl-Friedrich Schleussner;  Thomas B. Richardson;  Christopher J. Smith;  Steven T. Turnock
收藏  |  浏览/下载:11/0  |  提交时间:2020/08/18
Current and future global climate impacts resulting from COVID-19 科技报告
来源:Climate Analytics. 出版年: 2020
作者:  Piers M. Forster;  Harriet I. Forster;  Mat J. Evans;  Matthew J. Gidden;  Chris D. Jones;  Christoph A. Keller;  Robin D. Lamboll;  Corinne Le Quéré;  Joeri Rogelj;  Deborah Rosen;  Carl-Friedrich Schleussner;  Thomas B. Richardson;  Christopher J. Smith;  Steven T. Turnock
收藏  |  浏览/下载:10/0  |  提交时间:2020/08/18
Highly porous nature of a primitive asteroid revealed by thermal imaging 期刊论文
NATURE, 2020, 579 (7800) : 518-522
作者:  Quinn, Robert A.;  Melnik, Alexey, V;  Vrbanac, Alison;  Fu, Ting;  Patras, Kathryn A.;  Christy, Mitchell P.;  Bodai, Zsolt;  Belda-Ferre, Pedro;  Tripathi, Anupriya;  Chung, Lawton K.;  Downes, Michael;  Welch, Ryan D.;  Quinn, Melissa;  Humphrey, Greg;  Panitchpakdi, Morgan;  Weldon, Kelly C.;  Aksenov, Alexander;  da Silva, Ricardo;  Avila-Pacheco, Julian;  Clish, Clary;  Bae, Sena;  Mallick, Himel;  Franzosa, Eric A.;  Lloyd-Price, Jason;  Bussell, Robert;  Thron, Taren;  Nelson, Andrew T.;  Wang, Mingxun;  Leszczynski, Eric;  Vargas, Fernando;  Gauglitz, Julia M.;  Meehan, Michael J.;  Gentry, Emily;  Arthur, Timothy D.;  Komor, Alexis C.;  Poulsen, Orit;  Boland, Brigid S.;  Chang, John T.;  Sandborn, William J.;  Lim, Meerana;  Garg, Neha;  Lumeng, Julie C.;  Xavier, Ramnik J.;  Kazmierczak, Barbara, I;  Jain, Ruchi;  Egan, Marie;  Rhee, Kyung E.;  Ferguson, David;  Raffatellu, Manuela;  Vlamakis, Hera;  Haddad, Gabriel G.;  Siegel, Dionicio;  Huttenhower, Curtis;  Mazmanian, Sarkis K.;  Evans, Ronald M.;  Nizet, Victor;  Knight, Rob;  Dorrestein, Pieter C.
收藏  |  浏览/下载:46/0  |  提交时间:2020/05/13

Carbonaceous (C-type) asteroids(1) are relics of the early Solar System that have preserved primitive materials since their formation approximately 4.6 billion years ago. They are probably analogues of carbonaceous chondrites(2,3) and are essential for understanding planetary formation processes. However, their physical properties remain poorly known because carbonaceous chondrite meteoroids tend not to survive entry to Earth'  s atmosphere. Here we report on global one-rotation thermographic images of the C-type asteroid 162173 Ryugu, taken by the thermal infrared imager (TIR)(4) onboard the spacecraft Hayabusa2(5), indicating that the asteroid'  s boulders and their surroundings have similar temperatures, with a derived thermal inertia of about 300 J m(-2) s(-0.5) K-1 (300 tiu). Contrary to predictions that the surface consists of regolith and dense boulders, this low thermal inertia suggests that the boulders are more porous than typical carbonaceous chondrites(6) and that their surroundings are covered with porous fragments more than 10 centimetres in diameter. Close-up thermal images confirm the presence of such porous fragments and the flat diurnal temperature profiles suggest a strong surface roughness effect(7,8). We also observed in the close-up thermal images boulders that are colder during the day, with thermal inertia exceeding 600 tiu, corresponding to dense boulders similar to typical carbonaceous chondrites(6). These results constrain the formation history of Ryugu: the asteroid must be a rubble pile formed from impact fragments of a parent body with microporosity(9) of approximately 30 to 50 per cent that experienced a low degree of consolidation. The dense boulders might have originated from the consolidated innermost region or they may have an exogenic origin. This high-porosity asteroid may link cosmic fluffy dust to dense celestial bodies(10).


Thermal imaging data obtained from the spacecraft Hayabusa2 reveal that the carbonaceous asteroid 162173 Ryugu is an object of unusually high porosity.


  
Experimental demonstration of memory-enhanced quantum communication 期刊论文
NATURE, 2020
作者:  Quinn, Robert A.;  Melnik, Alexey, V;  Vrbanac, Alison;  Fu, Ting;  Patras, Kathryn A.;  Christy, Mitchell P.;  Bodai, Zsolt;  Belda-Ferre, Pedro;  Tripathi, Anupriya;  Chung, Lawton K.;  Downes, Michael;  Welch, Ryan D.;  Quinn, Melissa;  Humphrey, Greg;  Panitchpakdi, Morgan;  Weldon, Kelly C.;  Aksenov, Alexander;  da Silva, Ricardo;  Avila-Pacheco, Julian;  Clish, Clary;  Bae, Sena;  Mallick, Himel;  Franzosa, Eric A.;  Lloyd-Price, Jason;  Bussell, Robert;  Thron, Taren;  Nelson, Andrew T.;  Wang, Mingxun;  Leszczynski, Eric;  Vargas, Fernando;  Gauglitz, Julia M.;  Meehan, Michael J.;  Gentry, Emily;  Arthur, Timothy D.;  Komor, Alexis C.;  Poulsen, Orit;  Boland, Brigid S.;  Chang, John T.;  Sandborn, William J.;  Lim, Meerana;  Garg, Neha;  Lumeng, Julie C.;  Xavier, Ramnik J.;  Kazmierczak, Barbara, I;  Jain, Ruchi;  Egan, Marie;  Rhee, Kyung E.;  Ferguson, David;  Raffatellu, Manuela;  Vlamakis, Hera;  Haddad, Gabriel G.;  Siegel, Dionicio;  Huttenhower, Curtis;  Mazmanian, Sarkis K.;  Evans, Ronald M.;  Nizet, Victor;  Knight, Rob;  Dorrestein, Pieter C.
收藏  |  浏览/下载:34/0  |  提交时间:2020/07/03

The ability to communicate quantum information over long distances is of central importance in quantum science and engineering(1). Although some applications of quantum communication such as secure quantum key distribution(2,3) are already being successfully deployed(4-7), their range is currently limited by photon losses and cannot be extended using straightforward measure-and-repeat strategies without compromising unconditional security(8). Alternatively, quantum repeaters(9), which utilize intermediate quantum memory nodes and error correction techniques, can extend the range of quantum channels. However, their implementation remains an outstanding challenge(10-16), requiring a combination of efficient and high-fidelity quantum memories, gate operations, and measurements. Here we use a single solid-state spin memory integrated in a nanophotonic diamond resonator(17-19) to implement asynchronous photonic Bell-state measurements, which are a key component of quantum repeaters. In a proof-of-principle experiment, we demonstrate high-fidelity operation that effectively enables quantum communication at a rate that surpasses the ideal loss-equivalent direct-transmission method while operating at megahertz clock speeds. These results represent a crucial step towards practical quantum repeaters and large-scale quantum networks(20,21).


A solid-state spin memory is used to demonstrate quantum repeater functionality, which has the potential to overcome photon losses involved in long-distance transmission of quantum information.